使用哈希技术改进Golay代码

Sara Salama, Rashed K. Salem, H. Abdel-Kader
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引用次数: 0

摘要

数据代表着我们的世界和生活。数据不断增加,它们来自不同的来源,如传感器、地图、气候信息、智能手机、社交媒体和/或医疗数据领域。数据由不同的形式表示,如图像、文本、视频和/或数字数据。这些难以理解的数据需要一种有影响力的技术来聚类和分析。本文提出了一种用于未分类和无组织数据聚类过程的散列技术。这些聚类数据对决策过程很有用。该技术基于Golay纠错码。主要概念是逆转原始的Golay纠错方案并构建Golay代码地址哈希表(GCAHT)。仿真结果表明,该方法取得了良好的性能。测量采用β - cv、邓恩指数、c指数和和方误差。
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Improving Golay Code Using Hashing Technique
Data are the representation of our world and our life. Data are increasing continuously, they come from different sources such as sensors, maps, climate informatics, smartphones, social media and/or medical data domains. Data are represented by different forms such as image, text, video and/or digital data. These incomprehensible data need an influential technique to be clustered and analyzed. This paper presents a hashing technique for the clustering process of unclassified and disorganized data. These clustered data are useful for decision-making process. The proposed technique is based on Golay error-correction code. The main concept is reversing the original Golay error-correction scheme and building Golay Code Addresses Hash Table (GCAHT). Simulation results stated that the proposed technique achieved high performance. Beta-CV, Dunn Index, C-index and Sum Square Error are used for measurements.
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